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Noninvasive Multimodal Evaluation of Bioengineered Cartilage Constructs Combining Time-Resolved Fluorescence and Ultrasound Imaging

机译:结合时间分辨荧光和超声成像的生物工程软骨构造的无创多模态评估。

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摘要

A multimodal diagnostic system that integrates time-resolved fluorescence spectroscopy, fluorescence lifetime imaging microscopy, and ultrasound backscatter microscopy is evaluated here as a potential tool for assessing changes in engineered tissue composition and microstructure nondestructively and noninvasively. The development of techniques capable of monitoring the quality of engineered tissue, determined by extracellular matrix (ECM) content, before implantation would alleviate the need for destructive assays over multiple time points and advance the widespread development and clinical application of engineered tissues. Using a prototype system combining time-resolved fluorescence spectroscopy, FLIM, and UBM, we measured changes in ECM content occurring during chondrogenic differentiation of equine adipose stem cells on 3D biodegradable matrices. The optical and ultrasound results were validated against those acquired via conventional techniques, including collagen II immunohistochemistry, picrosirius red staining, and measurement of construct stiffness. Current results confirm the ability of this multimodal approach to follow the progression of tissue maturation along the chondrogenic lineage by monitoring ECM production (namely, collagen type II) and by detecting resulting changes in mechanical properties of tissue constructs. Although this study was directed toward monitoring chondrogenic tissue maturation, these data demonstrate the feasibility of this approach for multiple applications toward engineering other tissues, including bone and vascular grafts.
机译:集成了时间分辨荧光光谱,荧光寿命成像显微镜和超声反向散射显微镜的多模式诊断系统,在此评估它是一种潜在工具,可无损,无创地评估工程组织的组成和微观结构的变化。能够在植入前通过细胞外基质(ECM)含量确定能够监测工程组织质量的技术的发展,将减轻对多个时间点进行破坏性测定的需求,并促进工程组织的广泛开发和临床应用。使用结合时间分辨荧光光谱,FLIM和UBM的原型系统,我们测量了在3D可生物降解基质上马脂肪干细胞软骨分化过程中发生的ECM含量变化。光学和超声结果相对于通过常规技术获得的结果进行了验证,这些常规技术包括胶原蛋白II免疫组织化学,picrosirius红染色和结构刚度的测量。目前的结果证实了这种多峰方法能够通过监测ECM产生(即II型胶原)并检测组织构造物的机械性能变化来跟踪组织沿着软骨生成谱系发展的过程。尽管这项研究的目的是监测软骨组织的成熟度,但这些数据证明了该方法在多种工程化其他组织(包括骨骼和血管移植物)中的可行性。

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